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Osteo-renal regulation of systemic phosphate metabolism
1Department of Oral Medicine, Infection and Immunity, Harvard School of Dental Medicine, Boston, MA, USA. mrazzaque@hms.harvard.edu
Abstract:
Impaired kidney function and subsequent skeletal responses play a critical role in disrupting phosphate balance in chronic kidney disease (CKD) patients with mineral and bone disorder (CKD-MBD). In patients with CKD-MBD, the inability of the kidney to maintain normal mineral ion balance affects bone remodeling to induce skeletal fracture and extraskeletal vascular calcification. In physiological conditions, bone-derived fibroblast growth factor 23 (FGF23) acts on the kidney to reduce serum phosphate and 1,25-dihydroxyvitamin D levels. In humans, increased bioactivity of FGF23 leads to increased urinary phosphate excretion, which induces hypophosphatemic diseases (e.g., rickets/osteomalacia). However, reduced FGF23 activity is associated with hyperphosphatemic diseases (e.g., tumoral calcinosis). In patients with CKD, high serum levels of FGF23 fail to reduce serum phosphate levels and lead to numerous complications, including vascular calcification, one of the important determinants of mortality of CKD-MBD patients. Of particular significance, molecular, biochemical and morphological changes in patients with CKD-MBD are mostly due to osteo-renal dysregulation of mineral ion metabolism. Furthermore, hyperphosphatemia can partly contribute to the development of secondary hyperparathyroidism in patients with CKD-MBD. Relatively new pharmacological agents including sevelamer hydrochloride, calcitriol analogs and cinacalcet hydrochloride are used either alone, or in combination, to minimize hyperphosphatemia and hyperparathyroidism associated complications to improve morbidity and mortality of CKD-MBD patients. This article will briefly summarize how osteo-renal miscommunication can induce phosphate toxicity, resulting in extensive tissue injuries.
Insights
Chronic kidney disease (CKD) disrupts phosphate balance, leading to CKD-mineral and bone disorder (CKD-MBD). Osteo-renal dysregulation causes phosphate toxicity and tissue damage, impacting CKD-MBD patient outcomes.
Area of Science:
- Nephrology
- Endocrinology
- Bone Metabolism
Background:
- Chronic kidney disease (CKD) disrupts mineral ion homeostasis, leading to CKD-mineral and bone disorder (CKD-MBD).
- Impaired kidney function affects bone remodeling, causing fractures and vascular calcification in CKD-MBD patients.
- Fibroblast growth factor 23 (FGF23) plays a key role in phosphate regulation, with altered levels linked to various bone disorders.
Purpose of the Study:
- To summarize how osteo-renal dysregulation in CKD-MBD leads to phosphate toxicity.
- To explain the impact of disrupted mineral ion metabolism on skeletal and vascular health.
- To highlight the role of FGF23 in phosphate balance and its implications in CKD.
Main Methods:
- Review of literature on CKD-MBD pathophysiology.
- Analysis of the role of FGF23 in phosphate homeostasis.
- Discussion of molecular, biochemical, and morphological changes in CKD-MBD.
Main Results:
- High FGF23 levels in CKD fail to normalize phosphate, contributing to vascular calcification and mortality.
- Osteo-renal miscommunication drives phosphate toxicity and tissue injury.
- Hyperphosphatemia can exacerbate secondary hyperparathyroidism in CKD-MBD.
Conclusions:
- Disrupted osteo-renal communication is a key driver of phosphate toxicity in CKD-MBD.
- Managing mineral imbalances and FGF23 is crucial for improving CKD-MBD patient outcomes.
- Newer pharmacological agents aim to mitigate complications associated with CKD-MBD.
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